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Wheat straw-derived magnetic carbon foams: In-situ preparation and tunable high-performance microwave absorption

机译:小麦草衍生的磁性碳泡沫:原位制备和可调的高性能微波吸收

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摘要

Recently,biomass-derived three-dimensional (3D) porous carbon materials have been gaining more interest as promising microwave absorbers due to their low cost,vast availability,and sustainability.Here,a novel 3D interconnected porous magnetic carbon foams are in-situ synthesized via a combination of sol-gel and carbonization process with wheat straw as the carbon source and FeCl3·6H2O as the magnetic regulating agent.During the process of foams formation,the lignocelluloses from the steam-exploded wheat straw are converted into interconnected carbon sheet networks with hierarchical porous structures,and the precursor FeCl3·6H2O is converted into magnetic nanoparticles uniformly embedded in the porous carbon foams.The generated magnetic nanoparticles are benefit to enhance the interface polarization and magnetic loss ability to improve the efficient complementarities between the dielectric and magnetic loss,thus increasing the impedance matching.The obtained sample treated at 600 ℃ displays the best microwave absorption (MA) performance.It presents a minimal reflection loss (RL) of-43.6 dB at 7.1 GHz and the effective bandwidth (RL <-10 dB) is 3.3 GHz with the thickness of 4.7 mm.The 3D porous structure,multi-interfaces and the synergy of dielectric loss and magnetic loss make great contribution to the outstanding MA performance.
机译:近年来,生物质衍生的三维(3D)多孔碳材料因其低成本,广泛的可利用性和可持续性而成为有前途的微波吸收剂,引起了越来越多的兴趣。在此,一种新型的3D互连多孔磁性碳泡沫材料被原位合成。通过以麦草为碳源和FeCl3·6H2O为磁性调节剂的溶胶-凝胶和碳化工艺相结合。在泡沫形成过程中,蒸汽爆破的麦草中的木质纤维素转化为相互连接的碳板网络具有分层的多孔结构,将前驱体FeCl3·6H2O转化为均匀嵌入磁性多孔碳泡沫中的磁性纳米颗粒。 ,从而增加了阻抗匹配。获得的样品在600℃的温度下处理具有最佳的微波吸收(MA)性能,在7.1 GHz频率下反射损耗(RL)最小,为43.6 dB,有效带宽(RL <-10 dB)为3.3 GHz,厚度为4.7 mm.3D多孔其结构,多界面以及介电损耗和磁损耗的协同作用为优异的MA性能做出了巨大贡献。

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  • 来源
    《纳米研究(英文版)》 |2019年第6期|1423-1429|共7页
  • 作者单位

    Key Laboratory of Advanced Technologies of Materials(Ministry of Education), School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu 610031, China;

    Key Laboratory of Advanced Technologies of Materials(Ministry of Education), School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu 610031, China;

    Key Laboratory of Advanced Technologies of Materials(Ministry of Education), School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu 610031, China;

    Key Laboratory of Advanced Technologies of Materials(Ministry of Education), School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu 610031, China;

    Key Laboratory of Advanced Technologies of Materials(Ministry of Education), School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu 610031, China;

    Key Laboratory of Advanced Technologies of Materials(Ministry of Education), School of Materials Science and Engineering, Southwest Jiaotong University, Chengdu 610031, China;

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